US20230408123A1 - Air-conditioning apparatus - Google Patents

Air-conditioning apparatus Download PDF

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Publication number
US20230408123A1
US20230408123A1 US18/253,258 US202118253258A US2023408123A1 US 20230408123 A1 US20230408123 A1 US 20230408123A1 US 202118253258 A US202118253258 A US 202118253258A US 2023408123 A1 US2023408123 A1 US 2023408123A1
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United States
Prior art keywords
heat exchanger
port
chamber
flow switching
valve
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Pending
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US18/253,258
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English (en)
Inventor
Soichiro KOSHI
Atsushi Kawashima
Yusuke Tashiro
Masakazu Kondo
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Mitsubishi Electric Corp
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Mitsubishi Electric Corp
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Assigned to MITSUBISHI ELECTRIC CORPORATION reassignment MITSUBISHI ELECTRIC CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: KOSHI, Soichiro, TASHIRO, YUSUKE, KAWASHIMA, ATSUSHI, KONDO, MASAKAZU
Publication of US20230408123A1 publication Critical patent/US20230408123A1/en
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B41/00Fluid-circulation arrangements
    • F25B41/20Disposition of valves, e.g. of on-off valves or flow control valves
    • F25B41/26Disposition of valves, e.g. of on-off valves or flow control valves of fluid flow reversing valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • F24F11/41Defrosting; Preventing freezing
    • F24F11/42Defrosting; Preventing freezing of outdoor units
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/70Control systems characterised by their outputs; Constructional details thereof
    • F24F11/80Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air
    • F24F11/83Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air by controlling the supply of heat-exchange fluids to heat-exchangers
    • F24F11/84Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air by controlling the supply of heat-exchange fluids to heat-exchangers using valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B13/00Compression machines, plants or systems, with reversible cycle
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B41/00Fluid-circulation arrangements
    • F25B41/20Disposition of valves, e.g. of on-off valves or flow control valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B47/00Arrangements for preventing or removing deposits or corrosion, not provided for in another subclass
    • F25B47/02Defrosting cycles
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B5/00Compression machines, plants or systems, with several evaporator circuits, e.g. for varying refrigerating capacity
    • F25B5/02Compression machines, plants or systems, with several evaporator circuits, e.g. for varying refrigerating capacity arranged in parallel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B6/00Compression machines, plants or systems, with several condenser circuits
    • F25B6/02Compression machines, plants or systems, with several condenser circuits arranged in parallel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2313/00Compression machines, plants or systems with reversible cycle not otherwise provided for
    • F25B2313/025Compression machines, plants or systems with reversible cycle not otherwise provided for using multiple outdoor units
    • F25B2313/0251Compression machines, plants or systems with reversible cycle not otherwise provided for using multiple outdoor units being defrosted alternately
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2313/00Compression machines, plants or systems with reversible cycle not otherwise provided for
    • F25B2313/027Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means
    • F25B2313/02742Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means using two four-way valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2313/00Compression machines, plants or systems with reversible cycle not otherwise provided for
    • F25B2313/029Control issues
    • F25B2313/0292Control issues related to reversing valves

Definitions

  • the present disclosure relates to an air conditioning apparatus capable of performing a simultaneous heating and defrosting operation.
  • Patent Literature 1 discloses an air-conditioning apparatus in which a first heat exchange unit and a second heat exchange unit provided in an outdoor heat exchanger are alternately defrosted, whereby the outdoor heat exchanger can be defrosted without stopping a heating operation.
  • An existing air-conditioning apparatus uses a differential pressure drive type of flow switching valve that switches a flow passage between a flow passage to a first heat exchange unit and a flow passage to a second heat exchange unit.
  • a differential pressure drive type of flow switching valve that switches a flow passage between a flow passage to a first heat exchange unit and a flow passage to a second heat exchange unit.
  • the present disclosure is applied to solve the above problem, and an object according to the present disclosure is to ensure a differential pressure in a flow switching valve in an air-conditioning apparatus capable of performing a simultaneous heating and defrosting operation.
  • An air-conditioning apparatus includes a refrigerant circuit that includes a compressor, a high-pressure pipe through which high-pressure refrigerant discharged from the compressor flows, a low-pressure pipe through which low-pressure refrigerant to be sucked into the compressor flows, a first flow switching valve, an indoor heat exchanger, an expansion valve, a first outdoor heat exchanger, a second outdoor heat exchanger, and a second flow switching valve.
  • the second flow switching valve switches flow passages for refrigerant flowing to the first outdoor heat exchanger and the second outdoor heat exchanger.
  • the second flow switching valve includes a first chamber, a second chamber, and a slide valve configured to be moved by a differential pressure between the first chamber and the second chamber. At least one of the first chamber and the second chamber is connected with the high-pressure pipe or the low-pressure pipe.
  • one of the first chamber and the second chamber, between which a differential pressure is generated in the second flow switching valve is connected with the high-pressure pipe or the low-pressure pipe, whereby it is possible to ensure a sufficient differential pressure for switching and fixation of the second flow switching valve.
  • FIG. 1 is a refrigerant circuit diagram illustrating a configuration of an air-conditioning apparatus according to Embodiment 1.
  • FIG. 2 is an explanatory view for explanation of how the air-conditioning apparatus according to Embodiment 1 is operated when the air-conditioning apparatus 100 is in a cooling operation.
  • FIG. 3 is an explanatory view for explanation of how the air-conditioning apparatus 100 according to Embodiment 1 is operated when the air-conditioning apparatus 100 is in a heating operation.
  • FIG. 4 is an explanatory view for explanation of how the air-conditioning apparatus according to Embodiment 1 is operated when the air-conditioning apparatus is in a first operation of a simultaneous heating and defrosting operation.
  • FIG. 5 is an explanatory view for explanation of how the air-conditioning apparatus according to Embodiment 1 is operated when the air-conditioning apparatus is in a second operation of the simultaneous heating and defrosting operation.
  • FIG. 6 is a sectional view schematically illustrating a configuration of a second flow switching valve according to Embodiment 1.
  • FIG. 7 is a p-h diagram of the air-conditioning apparatus according to Embodiment 1.
  • FIG. 8 is a sectional view schematically illustrating a configuration of a second flow switching valve according to Embodiment 2.
  • FIG. 9 is a sectional view schematically illustrating a configuration of a second flow switching valve according to Embodiment 3.
  • FIG. 10 is a sectional view schematically illustrating a configuration of a second flow switching valve according to Embodiment 4.
  • FIG. 11 is a refrigerant circuit diagram illustrating a configuration of an air-conditioning apparatus according to Embodiment 5.
  • the air-conditioning apparatus 100 is a room air conditioner installed at a wall in an air-conditioning target space or an all-in-on air-conditioning system installed at a ceiling located above the air-conditioning target space.
  • the air-conditioning apparatus 100 is capable of performing a cooling operation, a heating operation, a reverse cycle defrosting operation (hereinafter simply referred to as “defrosting operation”), and a simultaneous heating and defrosting operation.
  • FIG. 1 is a refrigerant circuit diagram illustrating a configuration of the air-conditioning apparatus 100 according to Embodiment 1.
  • the air-conditioning apparatus 100 includes a refrigerant circuit 10 and a controller 50 that controls the refrigerant circuit 10 .
  • the refrigerant circuit 10 includes a compressor 1 , a first flow switching valve 2 , an indoor heat exchanger 3 , an expansion valve 4 , a first pressure reducing device 5 a , a second pressure reducing device 5 b , a first outdoor heat exchanger 6 a , a second outdoor heat exchanger 6 b , a second flow switching valve 7 , a first valve 8 , and a second valve 9 .
  • the compressor 1 is a fluid machine that sucks low-pressure gas refrigerant, compresses the low-pressure gas refrigerant to change it into high-pressure gas refrigerant, and discharges the high-pressure gas refrigerant.
  • the compressor 1 is an inverter drive compressor whose operating frequency can be adjusted. The operating frequency of the compressor 1 is controlled by the controller 50 .
  • the compressor 1 has a suction inlet 11 a through which refrigerant is sucked and a discharge outlet through which compressed refrigerant is discharged.
  • the suction inlet 11 a is kept at a suction pressure, that is, a low pressure
  • the discharge outlet 11 b is kept at a discharge pressure, that is, a high pressure.
  • the first flow switching valve 2 is a four-way valve that switches a flow passage for refrigerant discharged from the compressor 1 between a plurality of flow passages.
  • the first flow switching valve 2 has a first port A, a second port B, a third port C, and a fourth port D.
  • the first port A is a low-pressure port that is kept at a low pressure whichever of the cooling operation, the heating operation, the defrosting operation, and the simultaneous heating and defrosting operation is performed.
  • the third port C is a high-pressure port that is kept at a high pressure whichever of the cooling operation, the heating operation, the defrosting operation, and the simultaneous heating and defrosting operation is performed.
  • the first flow switching valve 2 can enter a first state indicated by solid lines in FIG.
  • the controller 50 sets the state of the first flow switching valve 2 to the first state, and in the heating operation or the simultaneous heating and defrosting operation, the controller 50 sets the state of the first flow switching valve 2 to the second state.
  • the indoor heat exchanger 3 is a heat exchanger that transfers heat between refrigerant that flows in the indoor heat exchanger 3 and air send by an indoor fan (not illustrated) provided in an indoor unit.
  • the indoor heat exchanger 3 operates as a condenser in the heating operation and operates as an evaporator in the cooling operation.
  • the expansion valve 4 is an electronic expansion valve that reduces the pressure of the refrigerant.
  • the opening degree of the expansion valve 4 is adjusted by the controller 50 .
  • the first pressure reducing device 5 a and the second pressure reducing device 5 b are respective capillary tubes that reduce the pressure of refrigerant flowing between the expansion valve 4 and the first outdoor heat exchanger 6 a and the pressure of refrigerant flowing between the expansion valve 4 and the second outdoor heat exchanger 6 b .
  • the first pressure reducing device 5 a is provided at the first outdoor heat exchanger 6 a on an outflow side for the refrigerant in the cooling operation
  • the second pressure reducing device 5 b is provided at the second outdoor heat exchanger 6 b on an outflow side for the refrigerant in the cooling operation.
  • the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b are each a heat exchanger that transfers heat between refrigerant flowing in the heat exchanger and air sent by an outdoor fan (not illustrated) provided in an outdoor unit.
  • Each of the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b operates as an evaporator in the heating operation and operates as a condenser in the cooling operation.
  • the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b are connected in parallel with each other in the refrigerant circuit 10 .
  • the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b are outdoor heat exchangers into which, for example, a single heat exchanger is divided, and which are arranged one above the other.
  • the first outdoor heat exchanger 6 a is located on a lower side
  • the second outdoor heat exchanger 6 b is located on an upper side.
  • the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b are also arranged in parallel with each other for the flow of air.
  • the second flow switching valve 7 switches the flow passage for the refrigerant between a flow passage through which the refrigerant flows to the first outdoor heat exchanger 6 a and a flow passage through which the refrigerant flows to the second outdoor heat exchanger 6 b .
  • the second flow switching valve 7 is a differential pressure drive type of four-way valve that is operated by a differential pressure.
  • the second flow switching valve 7 has a first port E, a second port F, a third port G, and a fourth port H.
  • the second flow switching valve 7 can enter a first state indicated by solid lines in FIG. 1 and a second state indicated by broken lines in FIG. 1 .
  • the controller 50 sets the state of the second flow switching valve 7 to the first state or the second state.
  • the first valve 8 is a solenoid valve or an electronic expansion valve that adjusts the flow rate of refrigerant that flows from the discharge outlet 11 b of the compressor 1 to the third port G of the second flow switching valve 7 .
  • the opening degree of the first valve 8 is adjusted by the controller 50 .
  • the second valve 9 is a solenoid valve or an electronic expansion valve that adjusts the flow rate of refrigerant that flows from the third port G of the second flow switching valve 7 to the suction inlet 11 a of the compressor 1 .
  • the opening degree of the second valve 9 is adjusted by the controller 50 .
  • the discharge outlet 11 b of the compressor 1 is connected with the third port C of the first flow switching valve 2 by a first high-pressure pipe 12 a .
  • first high-pressure pipe 12 a high-pressure refrigerant discharged from the discharge outlet 11 b of the compressor 1 flows whichever of the cooling operation, the heating operation, the defrosting operation, and the simultaneous heating and defrosting operation is performed.
  • a branch portion 14 provided at an intermediate portion of the first high-pressure pipe 12 a is connected with the first valve 8 by a second high-pressure pipe 12 b . Also, in the second high-pressure pipe 12 b , the high-pressure refrigerant discharged from the discharge outlet 11 b of the compressor 1 flows whichever of the cooling operation, the heating operation, the defrosting operation, and the simultaneous heating and defrosting operation is performed.
  • the first valve 8 is connected with the third port G of the second flow switching valve 7 by a first pipe 15 a .
  • the third port G of the second flow switching valve 7 is connected with the discharge outlet 11 b of the compressor 1 by the first pipe 15 a , the first valve 8 , the second high-pressure pipe 12 b , and the first high-pressure pipe 12 a .
  • a branch portion 16 provided at an intermediate portion of the first pipe 15 a is connected with the second valve 9 by a second pipe 15 b.
  • the suction inlet 11 a of the compressor 1 is connected with the second valve 9 by a first low-pressure pipe 13 a .
  • first low-pressure pipe 13 a low-pressure refrigerant that is to be sucked from the suction inlet 11 a of the compressor 1 flows whichever of the cooling operation, the heating operation, the defrosting operation, and the simultaneous heating and defrosting operation is performed.
  • a pilot pipe 713 of the second flow switching valve 7 is connected to the first low-pressure pipe 13 a .
  • a branch portion 17 provided at an intermediate portion of the first low-pressure pipe 13 a is connected with the first port A of the first flow switching valve 2 by a second low-pressure pipe 13 b.
  • the fourth port D of the first flow switching valve 2 is connected with one port of the indoor heat exchanger 3 by a refrigerant pipe, and the other port of the indoor heat exchanger 3 is connected with one port of the expansion valve 4 by a refrigerant pipe.
  • the other port of the expansion valve 4 is connected with the first pressure reducing device 5 a and the second pressure reducing device 5 b by respective refrigerant pipes.
  • the first pressure reducing device 5 a and the second pressure reducing device 5 b are connected with the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b , respectively. That is, the other port of the expansion valve 4 is connected with one port of the first outdoor heat exchanger 6 a and one port of the second outdoor heat exchanger 6 b via the refrigerant pipes and the first pressure reducing device 5 a and the second pressure reducing device 5 b . Furthermore, the one port of the first outdoor heat exchanger 6 a is connected with the one port of the second outdoor heat exchanger 6 b by a refrigerant pipe.
  • the other port of the first outdoor heat exchanger 6 a is connected with the fourth port H of the second flow switching valve 7 by a refrigerant pipe.
  • the other port of the second outdoor heat exchanger 6 b is connected with the second port F of the second flow switching valve 7 by a refrigerant pipe.
  • the first port E of the second flow switching valve 7 is connected with the second port B of the first flow switching valve 2 by a refrigerant pipe.
  • the controller 50 includes a microcomputer provided with a CPU, a ROM, a RAM, an I/O port, etc.
  • the controller 50 controls components of the air-conditioning apparatus 100 to cause any of the cooling operation, the heating operation, the defrosting operation, and the simultaneous heating and defrosting operation to be performed, based on detection signals sent from various sensors (not illustrated) provided in the air-conditioning apparatus 100 and set information input from the remote controller.
  • the controller 50 controls the operating frequency of the compressor 1 , switching of the state of each of the first flow switching valve 2 and the second flow switching valve 7 , the opening degree of each of the expansion valve 4 , the first valve 8 , and the second valve, and the rotating speed of each of the fans.
  • the various sensors provided in the air-conditioning apparatus 100 are an indoor temperature sensor that detects the temperature of the air-conditioning target space, an outside air temperature sensor that detects an outside air temperature, sensors that detect the temperatures or pressures of refrigerant flowing in the respective heat exchangers, a sensor that detects presence or absence of a person or persons in the air-conditioning target space, etc.
  • FIG. 2 is an explanatory view for explanation of how the air-conditioning apparatus 100 according to Embodiment 1 is operated when the air-conditioning apparatus 100 is in the cooling operation.
  • the first flow switching valve 2 and the second flow switching valve 7 are both set in the first state.
  • the first valve 8 is opened to a predetermined opening degree, and the second valve 9 is closed.
  • high-pressure gas refrigerant discharged from the compressor 1 branches into gas refrigerant that flows into the third port C of the first flow switching valve 2 and gas refrigerant that flows into the second high-pressure pipe 12 b .
  • the gas refrigerant that has flowed into the third port C of the first flow switching valve 2 passes through the second port B of the first flow switching valve 2 and the first port E and the fourth port H of the second flow switching valve 7 , and flows into the first outdoor heat exchanger 6 a .
  • the gas refrigerant that has flowed into the second high-pressure pipe 12 b passes through the first valve 8 , the first pipe 15 a , and the third port G and the second port F of the second flow switching valve 7 , and flows into the second outdoor heat exchanger 6 b .
  • the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b both operate as condensers.
  • the gas refrigerant that has flowed into the first outdoor heat exchanger 6 a and the gas refrigerant that has flowed into the second outdoor heat exchanger 6 b condense to change into liquid refrigerant.
  • the liquid refrigerant that has flowed out of the first outdoor heat exchanger 6 a is reduced in pressure at the first pressure reducing device 5 a and flows into the expansion valve 4 .
  • the liquid refrigerant that has flowed out of the second outdoor heat exchanger 6 b is reduced in pressure at the second pressure reducing device 5 b , joins the liquid refrigerant that has flowed out of the first outdoor heat exchanger 6 a , and then flows into the expansion valve 4 .
  • the liquid refrigerant that has flowed into the expansion valve 4 is reduced in pressure to change into low-pressure two-phase refrigerant.
  • the two-phase refrigerant that has flowed out of the expansion valve 4 flows into the indoor heat exchanger 3 .
  • the indoor heat exchanger 3 operates as an evaporator. That is, at the indoor heat exchanger 3 , the refrigerant that flows in the indoor heat exchanger 3 receives heat from indoor air as evaporation heat. As a result, the two-phase refrigerant that has flowed into the indoor heat exchanger 3 evaporates to change into low-pressure gas refrigerant. On the other hand, the indoor air sent by the indoor fan transfers heat to the refrigerant and is thus cooled.
  • the gas refrigerant that has flowed out of the indoor heat exchanger 3 passes through the fourth port D and the first port A of the first flow switching valve 2 , the second low-pressure pipe 13 b , and the first low-pressure pipe 13 a , and is sucked into the compressor 1 .
  • the gas refrigerant that has sucked into the compressor 1 is compressed to change into high-pressure gas refrigerant. In the cooling operation, the above cycle is continuously repeated.
  • FIG. 3 is an explanatory view for explanation of how the air-conditioning apparatus 100 according to Embodiment 1 is operated when the air-conditioning apparatus 100 is in the heating operation.
  • the first flow switching valve 2 is set in the second state
  • the second flow switching valve 7 is set in the first state.
  • the second valve 9 is opened to a predetermined opening degree, and the first valve 8 is closed.
  • High-pressure gas refrigerant discharged from the compressor 1 passes through the first high-pressure pipe 12 a and the third port C and the fourth port D of the first flow switching valve 2 , and flows into the indoor heat exchanger 3 .
  • the indoor heat exchanger 3 operates as a condenser. That is, at the indoor heat exchanger 3 , the refrigerant that flows in the indoor heat exchanger 3 exchanges heat with indoor air sent by the indoor fan, and transfers heat to the indoor air as condensation heat. As a result, the gas refrigerant that has flowed into the indoor heat exchanger 3 condenses to change into high-pressure liquid refrigerant. The indoor air sent by the indoor fan is heated by the heat transferred from the refrigerant.
  • the liquid refrigerant that flowed out of the indoor heat exchanger 3 flows into the expansion valve 4 .
  • the liquid refrigerant that has flowed into the expansion valve 4 is reduced in pressure to change into low-pressure two-phase refrigerant.
  • the two-phase refrigerant that has flowed out of the expansion valve 4 branch into two-phase refrigerant that flows into the first pressure reducing device 5 a and two-phase refrigerant that flows into the second pressure reducing device 5 b .
  • the two-phase refrigerant that has flowed into the first pressure reducing device 5 a is further reduced in pressure and flows into the first outdoor heat exchanger 6 a .
  • the two-phase refrigerant that has flowed into the second pressure reducing device 5 b is further reduced in pressure and flows into the second outdoor heat exchanger 6 b.
  • the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b both operate as condensers.
  • refrigerant that flows in the outdoor heat exchanger exchanges heat with outdoor air sent by the outdoor fan and receives heat from the outdoor air as evaporation heat.
  • the two-phase refrigerant that has flowed into each of the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b evaporates to change into low-pressure gas refrigerant.
  • the gas refrigerant that has flowed out of the first outdoor heat exchanger 6 a passes through the fourth port H and the first port E of the second flow switching valve 7 , the second port B and the first port A of the first flow switching valve 2 , the second low-pressure pipe 13 b , and the first low-pressure pipe 13 a , and is sucked into the compressor 1 .
  • the gas refrigerant that has flowed out of the second outdoor heat exchanger 6 b passes through the second port F and the third port G of the second flow switching valve 7 , the first pipe 15 a , the second pipe 15 b , and the second valve 9 , joints the gas refrigerant that has flowed out of the first outdoor heat exchanger 6 a , in the first low-pressure pipe 13 a , and is sucked into the compressor 1 .
  • the gas refrigerant that has sucked into the compressor 1 is compressed to change into high-pressure gas refrigerant. In the heating operation, the above cycle is continuously repeated.
  • the simultaneous heating and defrosting operation includes a first operation and a second operation.
  • the first outdoor heat exchanger 6 a and the indoor heat exchanger 3 operate as condensers, and the second outdoor heat exchanger 6 b operates as an evaporator.
  • the first outdoor heat exchanger 6 a is defrosted while heating is being continued.
  • the second outdoor heat exchanger 6 b and the indoor heat exchanger 3 operate as condensers, and the first outdoor heat exchanger 6 a operates as an evaporator.
  • the second outdoor heat exchanger 6 b is defrosted while heating is being continued.
  • the controller 50 causes the simultaneous heating and defrosting operation to be performed.
  • the requirement for the start of the simultaneous heating and defrosting operation for example, the following conditions are present: time that elapses from the start of the heating operation exceeds a threshold time, or the temperature of each of the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b reaches a threshold temperature or less.
  • the controller 50 When the requirement for the start of the simultaneous heating and defrosting operation is satisfied, the controller 50 first causes the first operation to be performed, and then when elapsed time reaches predetermined time, or when the temperature of the first outdoor heat exchanger 6 a exceeds the threshold temperature, the controller 50 causes the second operation to be performed.
  • FIG. 4 is an explanatory view for explanation of how the air-conditioning apparatus 100 according to Embodiment 1 is operated when the air-conditioning apparatus 100 is in the first operation of the simultaneous heating and defrosting operation.
  • the first flow switching valve 2 and the second flow switching valve 7 are both set in the second state.
  • the first valve 8 is opened to a predetermined opening degree, and the second valve 9 is closed.
  • High-pressure gas discharged from the compressor 1 branches into gas refrigerant that flows into the third port C of the first flow switching valve 2 and gas refrigerant that flows into the second high-pressure pipe 12 b .
  • the gas refrigerant that has flowed into the second high-pressure pipe 12 b passes through the first valve 8 , the first pipe 15 a , and the third port G and the fourth port H of the second flow switching valve 7 , and flows into the first outdoor heat exchanger 6 a .
  • frost adhering to the first outdoor heat exchanger 6 a is molten by heat transferred from the refrigerant that flows in the first outdoor heat exchanger 6 a .
  • the first outdoor heat exchanger 6 a is defrosted.
  • the gas refrigerant that has flowed into the first outdoor heat exchanger 6 a condenses to change into intermediate-pressure liquid refrigerant or two-phase refrigerant, flows out of the first outdoor heat exchanger 6 a , and is reduced in pressure at the first pressure reducing device 5 a.
  • the gas refrigerant that has flowed into the third port C of the first flow switching valve 2 passes through the fourth port D of the first flow switching valve 2 and flows into the indoor heat exchanger 3 .
  • the refrigerant that flows in the indoor heat exchanger 3 exchanges heat with indoor air sent by the indoor fan, and transfers heat to the indoor air as condensation heat.
  • the gas refrigerant that has flowed into the indoor heat exchanger 3 condenses to change into high-pressure liquid refrigerant.
  • the indoor air sent by the indoor fan is heated by heat transferred from the refrigerant.
  • the liquid refrigerant that has flowed out of the indoor heat exchanger 3 flows into the expansion valve 4 .
  • the liquid refrigerant that has flowed into the expansion valve 4 is reduced in pressure to change into low-pressure two-phase refrigerant.
  • the two-phase refrigerant that has flowed out of the expansion valve 4 joins the liquid refrigerant or two-phase refrigerant that has been reduced in pressure at the first pressure reducing device 5 a , is further reduced in pressure at the second pressure reducing device 5 b , and flows into the second outdoor heat exchanger 6 b .
  • the refrigerant that flows in the second outdoor heat exchanger 6 b exchanges heat with outdoor air sent by the outdoor fan, and receives heat from the outdoor air as evaporation heat.
  • the two-phase refrigerant that has flowed into the second outdoor heat exchanger 6 b evaporates to change into low-pressure gas refrigerant.
  • the gas refrigerant that has flowed out of the second outdoor heat exchanger 6 b passes through the second port F and the first port E of the second flow switching valve 7 , the second port B and the first port A of the first flow switching valve 2 , the second low-pressure pipe 13 b , and the first low-pressure pipe 13 a , and is sucked into the compressor 1 .
  • the gas refrigerant that has been sucked into the compressor 1 is compressed to change into high-pressure gas refrigerant.
  • the above cycle is continuously repeated, whereby the first outdoor heat exchanger 6 a is defrosted while heating is being continued.
  • FIG. 5 is an explanatory view for explanation of how the air-conditioning apparatus 100 according to Embodiment 1 is operated when the air-conditioning apparatus 100 is in the second operation of the simultaneous heating and defrosting operation.
  • the first flow switching valve 2 is set in the second state
  • the second flow switching valve 7 is set in the first state.
  • the first valve 8 is opened to a predetermined opening degree, and the second valve 9 is closed.
  • High-pressure gas refrigerant discharged from the compressor 1 branches, at the branch portion 14 of the first high-pressure pipe 12 a , into gas refrigerant that flows into the third port C of the first flow switching valve 2 and gas refrigerant that flows into the second high-pressure pipe 12 b .
  • the gas refrigerant that has flowed into the second high-pressure pipe 12 b passes through the first valve 8 , the first pipe 15 a , and the third port G and the second port F of the second flow switching valve 7 , and flows into the second outdoor heat exchanger 6 b .
  • frost adhering to the second outdoor heat exchanger 6 b is molten by heat transferred from the refrigerant that flows in the second outdoor heat exchanger 6 b .
  • the second outdoor heat exchanger 6 b is defrosted.
  • the gas refrigerant that has flowed into the second outdoor heat exchanger 6 b condenses to change into intermediate-pressure liquid refrigerant or two-phase refrigerant, flows out of the second outdoor heat exchanger 6 b as the intermediate-pressure liquid refrigerant or two-phase refrigerant, and is reduced in pressure at the second pressure reducing device 5 b.
  • the gas refrigerant that has flowed into the third port C of the first flow switching valve 2 passes through the fourth port D of the first flow switching valve 2 and flows into the indoor heat exchanger 3 .
  • the refrigerant that flows in the indoor heat exchanger 3 exchanges heat with indoor air sent by the indoor fan, and transfers heat to the indoor air as condensation heat.
  • the gas refrigerant that has flowed into the indoor heat exchanger 3 condenses to change into high-pressure liquid refrigerant.
  • the indoor air sent by the indoor fan is heated by the heat transferred from the refrigerant.
  • the liquid refrigerant that has flowed out of the indoor heat exchanger 3 flows into the expansion valve 4 .
  • the liquid refrigerant that has flowed into the expansion valve 4 is reduced in pressure to change into low-pressure two-phase refrigerant.
  • the two-phase refrigerant that has flowed out of the expansion valve 4 joins the liquid refrigerant or two-phase refrigerant that has been reduced in pressure at the second pressure reducing device 5 b , is further reduced in pressure at the first pressure reducing device and flows into the first outdoor heat exchanger 6 a .
  • the refrigerant that flows in the first outdoor heat exchanger 6 a exchanges heat with outdoor air sent by the outdoor fan, and receives heat from the outdoor fan as evaporation heat.
  • the two-phase refrigerant that has flowed into the first outdoor heat exchanger 6 a evaporates to change into low-pressure gas refrigerant.
  • the gas refrigerant that has flowed out of the first outdoor heat exchanger 6 a passes through the fourth port H and the first port E of the second flow switching valve 7 , the second port B and the first port A of the first flow switching valve 2 , the second low-pressure pipe 13 b , and the first low-pressure pipe 13 a , and is sucked into the compressor 1 .
  • the gas refrigerant that has been sucked into the compressor 1 is compressed to change into high-pressure gas refrigerant.
  • the above cycle is continuously repeated, whereby the second outdoor heat exchanger 6 b is defrosted while heating is being continued.
  • the air-conditioning apparatus 100 is operated when the air-conditioning apparatus 100 is in the defrosting operation.
  • the controller 50 causes the defrosting operation to be performed.
  • the requirement for the start of the defrosting operation for example, the following conditions are present: a condition in which the heating load is low or no person is present in the air-conditioning target space, in addition to a condition in which the requirement for the start of the simultaneous heating and defrosting operation is satisfied.
  • the operation of the air-conditioning apparatus 100 in the defrosting operation is the same as that in the cooling operation, which is illustrated in FIG. 2 .
  • the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b both operate as condensers. That is, at each of the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b , frost adhering to the outdoor heat exchanger is molten by heat transferred by the refrigerant that flows in the outdoor heat exchanger. As a result, the first outdoor heat exchanger 6 a and the second outdoor heat exchanger 6 b are defrosted.
  • FIG. 6 is a sectional view schematically illustrating a configuration of the second flow switching valve 7 according to Embodiment 1.
  • the second flow switching valve 7 includes a main valve 70 and a pilot valve 71 .
  • the main valve 70 includes a cylinder 701 , a slide rack 702 provided at part of an inner wall of the cylinder 701 , and a slide valve 703 that is slid over the slide rack 702 along a central axis of the cylinder 701 .
  • the first port E is provided at a central portion of the slide rack 702 in a direction along the central axis of the cylinder 701 .
  • the second port F and the fourth port H are located opposite to each other with respect to the first port E in the direction along the central axis of the cylinder 701 .
  • the third port G is located opposite to the first port E with respect to the central axis of the cylinder 701 .
  • the slide valve 703 is formed in the shape of a dome having an opening that faces a side where the slide rack 702 is located.
  • a piston 704 is provided such that the piston 704 is coupled to the slide valve 703 .
  • a first chamber 706 is provided between one end of the cylinder 701 and the piston 704 .
  • a piston 705 is provided on the other end side of the slide valve 703 in the direction along the central axis of the cylinder 701 .
  • a second chamber 707 is provided between the other end of the cylinder 701 and the piston 705 .
  • the pistons 704 and 705 are provided such that the pistons 704 and 705 are slidable along an inner wall surface of the cylinder 701 .
  • the pistons 704 and 705 are moved together with the slide valve 703 in the direction along the central axis of the cylinder 701 .
  • the pilot valve 71 includes four pilot pipes 710 , 711 , 712 , and 713 .
  • the pilot pipe 710 is connected with the third port G of the main valve 70 ;
  • the pilot pipe 711 is connected with the first chamber 706 of the main valve 70 ;
  • the pilot pipe 712 is connected with the second chamber 707 of the main valve 70 ;
  • the pilot pipe 713 is connected with the first low-pressure pipe 13 a.
  • the state of the pilot valve 71 is switched by the controller 50 between a first state and a second state.
  • the pilot pipe 710 and the pilot pipe 711 communicate with each other in the pilot valve 71
  • the pilot pipe 713 and the pilot pipe 712 communicate with each other in the pilot valve 71 .
  • the third port G and the first chamber 706 communicate with each other, whereby the pressure in the first chamber 706 is substantially equalized to that in the third port G.
  • the first low-pressure pipe 13 a and the second chamber 707 communicate with each other, whereby the pressure in the second chamber 707 is substantially equalized to that in the first low-pressure pipe 13 a .
  • the slide valve 703 is moved by a differential pressure between the first chamber 706 and the second chamber 707 .
  • the slide valve 703 In the first state, the slide valve 703 is moved toward the second chamber 707 , which is lower in pressure than the first chamber 706 .
  • the first port E and the fourth port H communicate with each other
  • the third port G and the second port F communicate with each other
  • the state of the second flow switching valve 7 is switched to the first state.
  • the pilot pipe 710 and the pilot pipe 712 communicate with each other in the pilot valve 71
  • the pilot pipe 711 and the pilot pipe 713 communicate with each other in the pilot valve 71
  • the third port G and the second chamber 707 communicate with each other, whereby the pressure in the second chamber 707 is substantially equalized to that in the third port G.
  • the first low-pressure pipe 13 a and the first chamber 706 communicate with each other, whereby the pressure in the first chamber 706 is substantially equalized to that in the first low-pressure pipe 13 a .
  • the slide valve 703 is moved toward the first chamber 706 , which is lower in pressure than the second chamber 707 .
  • the first port E and the second port F communicate with each other
  • the third port G and the fourth port H communicate with each other
  • the state of the second flow switching valve 7 is switched to the second state.
  • FIG. 7 is a p-h diagram of the air-conditioning apparatus 100 according to Embodiment 1.
  • the pilot pipe 713 of the pilot valve 71 is connected with the first port E of the main valve 70 .
  • a differential pressure D po m between the third port G and the first port E is thus a pressure loss in the second flow switching valve 7 and decreases. Consequently, it is not possible to ensure a sufficient differential pressure for movement and fixation of the slide valve 703 .
  • the following failure may occur: the state of the slide valve 703 cannot be switched, or the position of the slide valve 703 is shifted during the operation.
  • the pilot pipe 713 of the second flow switching valve 7 is connected with the first low-pressure pipe 13 a , whereby in the cooling operation also, it is possible to obtain a great differential pressure Dpi between the third port G and the first low-pressure pipe 13 a . As a result, it is possible to ensure a differential pressure between the first chamber 706 and the second chamber 707 and reliably move and fix the slide valve 703 .
  • the first chamber 706 or the second chamber 707 of the second flow switching valve 7 is connected with the first low-pressure pipe 13 a in which low-pressure refrigerant flows, via the pilot valve 71 , whereby it is possible to ensure a minimum operating differential pressure in the second flow switching valve 7 .
  • the second flow switching valve 7 can be normally operated.
  • An air-conditioning apparatus 100 according to Embodiment 2 will be described.
  • the configuration of the second flow switching valve 7 is different from that in Embodiment 1.
  • the other configurations and controls in the air-conditioning apparatus 100 according to Embodiment 2 are the same as those in Embodiment 1.
  • FIG. 8 is a sectional view schematically illustrating a configuration of a second flow switching valve 7 A according to Embodiment 2.
  • the pilot pipe 713 of the second flow switching valve 7 A is connected with the first port E; and the second chamber 707 of the main valve 70 of the second flow switching valve 7 A is connected with the first low-pressure pipe 13 a by a pipe 721 and a third valve 722 . That is, in Embodiment 2, the second chamber 707 of the second flow switching valve 7 A is connected with the first low-pressure pipe 13 a without communicating with the pilot valve 71 .
  • the third valve 722 is a solenoid valve or an electronic expansion valve that adjusts the flow rate of refrigerant flowing from the first low-pressure pipe 13 a to the second chamber 707 , and the opening degree of the third valve 722 is controlled by the controller 50 .
  • the third valve 722 is opened by the controller 50 , the first low-pressure pipe 13 a and the second chamber 707 communicate with each other, and as a result, the pressure in the second chamber 707 is substantially equalized to that in the first low-pressure pipe 13 a .
  • the slide valve 703 is moved by a differential pressure between the first chamber 706 and the second chamber 707 , and the state of the second flow switching valve 7 A is switched.
  • the second chamber 707 is connected with the first low-pressure pipe 13 a without communicating with the pilot valve 71 .
  • the second flow switching valve 7 A can be normally operated.
  • FIG. 8 illustrates an example in which the second chamber 707 is connected with the first low-pressure pipe 13 a without communicating with the pilot valve 71 , this illustration is not limiting.
  • the first chamber 706 may be connected with the first low-pressure pipe 13 a without communicating with the pilot valve 71 , or each of the first chamber 706 and the second chamber 707 may be connected with the first low-pressure pipe 13 a without communicating with the pilot valve 71 .
  • An air-conditioning apparatus 100 according to Embodiment 3 will be described.
  • the configuration of the second flow switching valve 7 is different from that in Embodiment 1.
  • the other configurations and controls in the air-conditioning apparatus 100 according to Embodiment 3 are the same as those in Embodiment 1.
  • FIG. 9 is a sectional view schematically illustrating a configuration of a second flow switching valve 7 B according to Embodiment 3. As illustrated in FIG. 9 , in Embodiment 3, the pilot pipe 713 of the second flow switching valve 7 B is connected with the first port E, and the pilot pipe 710 of the second flow switching valve 7 B is connected with the second high-pressure pipe 12 b of the refrigerant circuit 10 .
  • low-pressure refrigerant flows into both the third port G and the first port E.
  • the pilot pipe 710 of the pilot valve 71 is connected with the third port G of the main valve 70 .
  • the differential pressure between the third port G and the first port E is only the differential pressure loss in the second flow switching valve 7 and it may be impossible to ensure a sufficient differential pressure for movement and fixation of the slide valve 703 .
  • the first chamber 706 or the second chamber 707 of the second flow switching valve 7 B is connected with the first low-pressure pipe 13 a via the pilot valve 71 , whereby in the heating operation also, it is possible to ensure a great differential pressure between the first port E and the second high-pressure pipe 12 b .
  • the second flow switching valve 7 B can be normally operated.
  • An air-conditioning apparatus 100 according to Embodiment 4 will be described.
  • the configuration of the second flow switching valve 7 is different from that in Embodiment 1.
  • the other configurations and controls in the air-conditioning apparatus 100 are the same as those in Embodiment 1.
  • FIG. 10 is a sectional view schematically illustrating a configuration of a second flow switching valve 7 C according to Embodiment 4.
  • the pilot pipe 710 is connected with the third port G
  • the pilot pipe 713 is connected with the first port E.
  • the first chamber 706 of the main valve 70 is connected with the second high-pressure pipe 12 b by a pipe 731 and a fourth valve 732 . That is, in Embodiment 4, the first chamber 706 of the second flow switching valve 7 C is connected with the second high-pressure pipe 12 b without communicating with a pilot valve 41 .
  • the fourth valve 732 is a solenoid valve or an electronic expansion valve that adjusts the flow rate of refrigerant flowing from the second high-pressure pipe 12 b into the first chamber 706 , and the opening degree of the fourth valve 732 is controlled by the controller 50 .
  • the fourth valve 732 is opened by the controller 50 , the second high-pressure pipe 12 b and the first chamber 706 communicate with each other, and as a result, the pressure in the first chamber 706 is substantially equalized to that in the second high-pressure pipe 12 b .
  • the slide valve 703 is moved by the differential pressure between the first chamber 706 and the second chamber 707 , and the state of the second flow switching valve 7 C is switched.
  • the first chamber 706 is connected with the second high-pressure pipe 12 b without communicating with the pilot valve 71 .
  • the second flow switching valve 7 C can be normally operated.
  • FIG. 9 illustrates an example in which the first chamber 706 of the second flow switching valve 7 C is connected with the second high-pressure pipe 12 b without communicating with the pilot valve 71 , this illustration is not limiting.
  • the second chamber 707 may be connected with the second high-pressure pipe 12 b without communicating with the pilot valve 71 , or each of the first chamber 706 and the second chamber 707 may be connected with the second high-pressure pipe 12 b without communicating with the pilot valve 71 .
  • An air-conditioning apparatus 100 A according to Embodiment 5 will be described.
  • the configuration of the second flow switching valve 7 is different from that in Embodiment 1.
  • the other configurations and controls of the air-conditioning apparatus 100 A according to Embodiment 5 are the same as those in Embodiment 1.
  • FIG. 11 is a refrigerant circuit diagram illustrating a configuration of the air-conditioning apparatus 100 A according to Embodiment 5.
  • the air-conditioning apparatus 100 A of Embodiment 5 does not include the second valve 9 .
  • the suction inlet 11 a of the compressor 1 and the first port A of the first flow switching valve 2 are connected with each other by the first low-pressure pipe 13 a .
  • the air-conditioning apparatus 100 A includes a second flow switching valve 7 D that switches a flow passage for the refrigerant between a flow passage through the refrigerant flows to the first outdoor heat exchanger 6 a and a flow passage through the refrigerant flows to the second outdoor heat exchanger 6 b.
  • the second flow switching valve 7 D is a differential pressure drive type of four-way valve that is operated by a differential pressure as in the second flow switching valve according to each of Embodiments 1 to 4.
  • the second flow switching valve 7 D has a first port E, a second port F, a third port G, and a fourth port H.
  • the second flow switching valve 7 D of Embodiment 5 can enter a first state, a second state, and a third state. In the first state, the first port E, the second port F, and the fourth port H communicate with each other, and the third port G is closed. In the second state, the first port E and the second port F communicate with each other, and the third port G and the fourth port H communicate with each other. In the third state, the second port F and the third port G communicate with each other, and the first port E and the fourth port H communicate with each other.
  • the second flow switching valve 7 D In each of the cooling operation, the defrosting operation, and the heating operation, the second flow switching valve 7 D is set in the first state; in the first operation of the simultaneous heating and defrosting operation, the second flow switching valve 7 D is set in the second state; and in the second operation of the simultaneous heating and defrosting operation, the second flow switching valve 7 D is set in the third state.
  • the second flow switching valve 7 D at least one of the first chamber 706 and the second chamber 707 , between which a differential pressure is generated, is connected with the first low-pressure pipe 13 a or the second high-pressure pipe 12 b .
  • the pilot pipe 713 of the second flow switching valve 7 D is connected with the first low-pressure pipe 13 a
  • the second chamber 707 of the second flow switching valve 7 D is connected with the first low-pressure pipe 13 a
  • the pilot pipe 710 of the second flow switching valve 7 D is connected with the second high-pressure pipe 12 b
  • the first chamber 706 of the second flow switching valve 7 D is connected with the second high-pressure pipe 12 b.
  • the second flow switching valve 7 D can enter three states as in Embodiment 5, by connecting at least one of the first chamber 706 and the second chamber 707 with the first low-pressure pipe 13 a or the second high-pressure pipe 12 b , it is possible to ensure a minimum operating differential pressure in the second flow switching valve 7 D. As a result, the second flow switching valve 7 D can be normally operated.
  • connection of the pilot pipe 713 of Embodiment 1 and the second chamber 707 of Embodiment 2 it suffices that the pilot pipe 713 of Embodiment 1 and the second chamber 707 of Embodiment 2 are each connected to a low-pressure portion whichever of the operations is performed in the refrigerant circuit 10 , and the pilot pipe 713 of Embodiment 1 and the second chamber 707 of Embodiment 2 may be each connected with the second low-pressure pipe 13 b or any of the other low-pressure pipes, instead of with the first low-pressure pipe 13 a .
  • pilot pipe 710 of Embodiment 3 and the first chamber 706 of Embodiment 4 are each connected to a low-pressure portion whichever of the operations is performed in the refrigerant circuit 10 , and the pilot pipe 710 of Embodiment 3 and the first chamber 706 of Embodiment 4 may be connected with the first high-pressure pipe 12 a or any of the other high-pressure pipes, instead of with the second high-pressure pipe 12 b.
  • Embodiments 1 to 5 can be combined arbitrarily.
  • the second flow switching valve 7 may be configured such that the pilot pipe 713 is connected with the first low-pressure pipe 13 a and the pilot pipe 710 is connected with the second high-pressure pipe 12 b .
  • the second flow switching valve 7 may be configured such the second chamber 707 is connected with the first low-pressure pipe 13 a and the first chamber 706 is connected with the second high-pressure pipe 12 b .
  • the second flow switching valve 7 may be configured such that the pilot pipe 713 is connected with the first low-pressure pipe 13 a and the first chamber 706 is connected with the second high-pressure pipe 12 b .
  • the second flow switching valve 7 may be configured such that the second chamber 707 is connected with the first low-pressure pipe 13 a and the pilot pipe 710 is connected with the second high-pressure pipe 12 b . That is, it suffices that part of the second flow switching valve 7 that is other than the ports is connected to any one of the low-pressure pipes and the high-pressure pipes in the refrigerant circuit 10 .

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Fluid Mechanics (AREA)
  • Compression-Type Refrigeration Machines With Reversible Cycles (AREA)
US18/253,258 2021-01-19 2021-01-19 Air-conditioning apparatus Pending US20230408123A1 (en)

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JP6615222B2 (ja) * 2015-12-02 2019-12-04 三菱電機株式会社 空気調和装置
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